Design Principle and Development Trends of Silicon-Based Anode Binders for Lithium-ion Batteries: A Mini Review

Hongyang Zhang, Yingdong Chen, Fangrui Liu, Ruojia Zhu, Pengtao Zhao, Lianjin Wei, Tao Chen, Jiajun Fu
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Abstract

Abstract: Silicon (Si), recognized as a promising alternative material for the anodes of lithium-ion batteries, boasts a high theoretical specific capacity and abundant natural availability. During the preparation of silicon-based anodes, binders play a pivotal role in ensuring the cohesion of silicon particles, conductive agents, and current collectors. The structure and performance of these binders are critical for the mechanical stability, electrical conductivity, and stress dissipation capacity of the anodes. This review initially outlines the structural characteristics of various binders, including linear, branched, and three-dimensional cross-linked types. It then delves into the relationship between the structure and properties of these binders in the context of their application in high-performance lithium-ion batteries, focusing on their mechanical properties, electrical conductivity, and self-healing capabilities. Particular attention is given to the design strategies for binders that facilitate stress dissipation, with an emphasis on integrating multifunctional polymer binders renowned for their superior conductive and self-healing features. Such binders contribute to the formation of a robust three-dimensional network structure via multiple bonding mechanisms, including chemical, non-covalent, and coordination interactions. This configuration significantly enhances the adhesion between silicon particles, thereby facilitating the efficient dissipation of stress, which is a key aspect for ensuring the long-term cycling stability of lithium-ion batteries. Lastly, the paper explores future development directions for silicon anode binders, advocating for a thorough investigation into the synergy of diverse structural and functional combinations, with the aim of advancing the performance and practical application of silicon-based lithium-ion batteries.
锂离子电池硅基负极粘合剂的设计原理与发展趋势:小型综述
摘要:硅(Si)被认为是锂离子电池阳极的一种有前途的替代材料,它具有很高的理论比容量和丰富的天然可用性。在硅基阳极的制备过程中,粘结剂在确保硅颗粒、导电剂和集流器的凝聚力方面起着关键作用。这些粘结剂的结构和性能对阳极的机械稳定性、导电性和应力消散能力至关重要。本综述首先概述了各种粘结剂的结构特点,包括线性、支化和三维交联类型。然后,在高性能锂离子电池应用的背景下,深入探讨这些粘合剂的结构与性能之间的关系,重点关注其机械性能、导电性和自修复能力。研究特别关注促进应力消散的粘合剂的设计策略,重点是整合多功能聚合物粘合剂,这些粘合剂因其卓越的导电性和自修复功能而闻名。这种粘合剂通过多种结合机制,包括化学、非共价和配位相互作用,有助于形成稳固的三维网络结构。这种结构大大增强了硅颗粒之间的粘附力,从而促进了应力的有效消散,这是确保锂离子电池长期循环稳定性的一个关键方面。最后,论文探讨了硅负极粘合剂的未来发展方向,主张深入研究各种结构和功能组合的协同作用,以提高硅基锂离子电池的性能和实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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